Electrical connectors are used in various electrical systems to provide electrical conduction between components of the electrical systems. During a typical current conduction process, electric connectors are mated to their respective mating connectors such as receptacles to initiate electrical current flow. A particular concern occurs when electrical current arcs through the air between plug connectors and receptacles, prior to the plug connectors and receptacles becoming fully mated. Accordingly, there exists a need for an electrical connector assembly or system that can reduce electrical current arcing during the mating of electrical connectors to receptacles or other connectors.
In one aspect, the technology relates to an electrical connection device. The electrical connection device comprises a housing, a first contact end, a second contact end, a first connector connectable to the first contact end, and a second connector connected to the second contact end. The electrical connection device may also comprise an electrical disconnection switch located between the first contact end and the first connector which connects the first contact end and the first connector in a first state, and disconnects the first contact end and the first connector in a second state. In addition, the electrical connection device may comprise a movable conduction engagement device that is moveable relative to the housing which changes the electrical disconnection switch from the first and second states.
The conduction engagement device may comprise a magnetic element that moves free ends of the first contact end and the first connector of the electrical disconnection switch into electrical contact in the first state, wherein the free ends are held by the magnetic element in electrical contact in the first state, and wherein the free ends are allowed to separate when the movable conduction engagement device is moved so as to move the magnetic element a distance away from the free ends in the second state.
Another aspect of the present disclosure relates to a method of conducting electricity through an electrical conduction device. The method includes aligning contact ends of an electrical connection device with the respective mating contact ends of a mating electrical connection device. After alignment, the contact ends of the electrical connection device are connected to the mating contacts of the mating electrical connection device. A conduction engagement device is provided as part of the electrical connection device. The conduction engagement device is engaged when it moves to a location on the electrical connection device, wherein a magnetic element in the conduction engagement device causes a first electrical terminal member and second electrical terminal member in an electrical disconnection switch in the electrical connection device to physically connect. An electrical current is sent through the electrical connection device.
Another aspect of the present disclosure relates to an electrical connection system. An electrical connection device comprises a housing, a first contact end, a second contact end, a first connector connectable to the first contact end, and a second connector connected to the second contact end. The electrical connection device may also comprise an electrical disconnection switch located between the first contact end and the first connector which connects the first contact end and the first connector in a first state, and disconnects the first contact end and the first connector in a second state. The electrical connection device may also comprise a movable conduction engagement device that is moveable relative to the housing which changes the electrical disconnection switch from the first and second states.
The conduction engagement device also comprises a magnetic element that moves free ends of the first contact end and the first connector of the electrical disconnection switch into electrical contact in the first state, wherein the free ends are held by the magnetic element in electrical contact in the first state, and wherein the free ends are allowed to separate when the movable conduction engagement device is moved so as to move the magnetic element a distance away from the free ends in the second state.
The system also comprises a mating electrical connection device comprising a first mating contact end and a second mating contact end, wherein the electrical connection device is connectable to the mating electrical connection device in two steps, a first step wherein the first and second contact ends make electrical contact with respective mating first and second contact ends of the mating electrical connection device while the electrical disconnection switch is in the second state, and a later second step wherein the movable conduction engagement device moves the free ends of the electrical disconnection switch into electrical contact in the first state.
There are shown in the drawings, embodiments which are presently preferred, it being understood, however, that the technology is not limited to the precise arrangements and instrumentalities shown.
Reference will now be made in detail to the exemplary aspects of the present disclosure that are illustrated in the accompanying drawings. Wherever possible, the same reference numbers will be used throughout the drawings to refer to the same or like structure.
First contact end 118 and second contact end 116 can be in the form of pins. First mating contact end 128 and second mating contact end 126 can be in the form of sockets.
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In an embodiment, the conduction engagement device 112 can be an annulus that is configured to move along an axis of the housing 106, parallel to the first connector 110 and second connector 108. In an alternate embodiment, the conduction engagement device 112 may be tethered to the housing 106. In the tethering example, a tether may be used to connect the housing 106 and the conduction engagement device 112. The tethered connection will be the only restriction in the range of motion for the conduction engagement device, and the engagement device motion will not be restricted to move along an axis of the housing 106. In a further embodiment, the conduction engagement device 112 may be configured to open and close to encompass the housing 106 in the appropriate proximity to the electrical disconnection switch 120.
Regarding material composition, the engagement device 112 may be comprised of a rigid polymer. In another embodiment, the conduction engagement device 112 may comprise a movable magnet instead of a magnet 114 being encompassed in a conduction engagement device composed of a different material. In this example, the electrical terminal members 122, 124 in the electrical disconnection switch 120 may be configured to physically connect when encompassed by a magnetic field.
In another aspect of the disclosure, the conduction engagement device 112 may also comprise a locking mechanism. A function of the locking mechanism seeks to ensure that that the magnet 114 stays in proximity to the electrical disconnection switch 112 in order to maintain an electrical connection between the first electrical terminal member 122 and the second electrical terminal member 124. In one embodiment, the locking mechanism of the conduction engagement device may comprise grooves in the inner surface in the conduction engagement device 112 that respectively mate with a grooved surface on the exterior surface of the housing 106. Thus, the mated grooved surfaces may allow the conduction engagement device 112 to be screwed on to the housing 106 at the appropriate region, reducing potential slippage of the conduction engagement device 112 on the housing 106. In another embodiment, the conduction engagement device 112 may have a latch that sets in a notch on the housing 106. In such an embodiment, the location of the notch and latch locking mechanism may be configured to properly align the magnet 114 with the first electrical terminal member 122 and second terminal member 124.
The locking mechanism may also hold the electrical connection device 102 to the mating electrical connection device 104.
As discussed earlier, when the conduction engagement device 112 is in proximity to the electrical disconnection switch 120, the magnet 114 in the conduction engagement device 112 causes the first electrical terminal member 122 and the second electrical terminal member 124 to come in contact. In one embodiment, the magnetic force may cause the first electrical terminal member 122 and the second electrical terminal member 124 to rotate about a base end 206. Both terminal members have a base end 206 that may be restricted by the edges of the enclosure 200. In addition, the first electrical terminal member 122 and the second electrical terminal member 124 have a free end 208. When there is no electrical current flowing, the electrical disconnection switch is disengaged. In the disengaged state, the first electrical terminal member 122 and the second electrical terminal member 124 may be structurally configured so that the free ends 208 are set at a predetermined non-engagement displacement 202. In another embodiment, the spring constant of the second electrical terminal member 124 may be higher than the spring constant of the first electrical terminal member 122. A higher spring constant of the second electrical terminal member 124 increases the stiffness of the second electrical terminal member 124. Thus, the movement of the free end 208 of the first electrical terminal member 122 from the initial displacement 202 may be greater when subjected to the magnetic force of the magnet 114. Varying the stiffness between the two electrical terminal members may ensure that the non-engagement displacement 202 will decrease and result in contact of both free ends 208, when the electrical disconnection device 120 is placed in a magnetic field. Accordingly, depending on the placement of the magnet 114, another configuration may use a first electrical terminal member 122 with a higher spring constant than the second electrical terminal member 124.
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The electrical connection device 102 can be included in an electrical only cable or other electrical only connection. In one embodiment, the electrical connection device 102 is in the form of a plug, and the mating electrical connection device 104 is in the form of a socket or a receptacle.
Device 102 can be part of high-voltage hybrid optical/electrical connectivity solution when both power and fiber signals are provided by the same cable. The device 102 could also be used as an interlock to power off a laser source as well, limiting optical reflections or unsafe optical power when disconnected.
While there have been described herein what are to be considered exemplary and preferred embodiments of the present technology, other modifications of the technology will become apparent to those skilled in the art from the teachings herein. The particular methods of manufacture and geometries disclosed herein are exemplary in nature and are not to be considered limiting. It is therefore desired to be secured in the appended claims all such modifications as fall within the spirit and scope of the technology. Accordingly, what is desired to be secured by Letters Patent is the technology as defined and differentiated in the following claims, and all equivalents.
This application is being filed on Feb. 16, 2016 as a PCT International Patent Application and claims the benefit of U.S. Patent Application Ser. No. 62/117,104, filed on Feb. 17, 2015, the disclosure of which is incorporated herein by reference in its entirety.
Filing Document | Filing Date | Country | Kind |
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PCT/US2016/018059 | 2/16/2016 | WO | 00 |
Number | Date | Country | |
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62117104 | Feb 2015 | US |